Highly Porous and Drug-Loaded Amorphous Solid Dispersion Microfiber Scaffolds of Indomethacin Prepared by Melt Electrowriting
暂无分享,去创建一个
[1] P. Wieringa,et al. Assessing the response of human primary macrophages to defined fibrous architectures fabricated by melt electrowriting , 2022, Bioactive materials.
[2] M. Repka,et al. Investigation of poly(2-ethyl-2-oxazoline) as a novel extended release polymer for hot-melt extrusion paired with fused deposition modeling 3D printing , 2022, Journal of Drug Delivery Science and Technology.
[3] Menglin Chen,et al. Reshapable Osteogenic Biomaterials Combining Flexible Melt Electrowritten Organic Fibers with Inorganic Bioceramics. , 2022, Nano letters.
[4] K. Edwards,et al. Influence of Chain Length of Gradient and Block Copoly(2-oxazoline)s on Self-Assembly and Drug Encapsulation. , 2022, Small.
[5] D. Hutmacher,et al. Spatially Heterogeneous Tubular Scaffolds for In Situ Heart Valve Tissue Engineering Using Melt Electrowriting , 2022, Advanced Functional Materials.
[6] P. Dalton,et al. Processing of Poly(lactic‐ co ‐glycolic acid) Microfibers Via Melt Electrowriting , 2021, Macromolecular Chemistry and Physics.
[7] J. Booth,et al. Amorphous Solid Dispersions: Utilization and Challenges in Preclinical Drug Development within AstraZeneca. , 2021, International journal of pharmaceutics.
[8] H. Yamane,et al. Design and manufacturing of 3D high-precision micro-fibrous poly (l-lactic acid) scaffold using melt electrowriting technique for bone tissue engineering , 2021 .
[9] M. S. Ibrahim,et al. QUALITY BY DESIGN (QBD) AS A TOOL FOR THE OPTIMIZATION OF INDOMETHACIN FREEZE-DRIED SUBLINGUAL TABLETS: IN VITRO AND IN VIVO EVALUATION , 2021, International Journal of Applied Pharmaceutics.
[10] S. Pispas,et al. Poly(2-oxazoline)-Based Amphiphilic Gradient Copolymers as Nanocarriers for Losartan: Insights into Drug–Polymer Interactions , 2021, Macromol.
[11] Lynne S. Taylor,et al. Pharmaceutical amorphous solid dispersion: A review of manufacturing strategies , 2021, Acta pharmaceutica Sinica. B.
[12] N. Hondow,et al. Characterization of Amorphous Solid Dispersions and Identification of Low Levels of Crystallinity by Transmission Electron Microscopy. , 2021, Molecular pharmaceutics.
[13] A. Gliszczyńska,et al. Lipid Formulations and Bioconjugation Strategies for Indomethacin Therapeutic Advances , 2021, Molecules.
[14] R. Luxenhofer,et al. Poly(2‐oxazoline)‐ and Poly(2‐oxazine)‐Based Self‐Assemblies, Polyplexes, and Drug Nanoformulations—An Update , 2021, Advanced healthcare materials.
[15] H. Fan,et al. Evaluation of Drug Dissolution Rate in Co-amorphous and Co-crystal Binary Drug Delivery Systems by Thermodynamic and Kinetic Methods , 2021, AAPS PharmSciTech.
[16] Dijana Jelić. Thermal Stability of Amorphous Solid Dispersions , 2021, Molecules.
[17] Juliane C Kade,et al. Polymers for Melt Electrowriting , 2020, Advanced healthcare materials.
[18] Jinghan Li,et al. Carvedilol-loaded polyvinylpyrrolidone electrospun nanofiber film for sublingual delivery , 2020 .
[19] A. Healy,et al. Physicochemical Properties of Poly-vinyl Polymers and Their Influence on Ketoprofen Amorphous Solid Dispersion Performance: A Polymer Selection Case Study , 2020, Pharmaceutics.
[20] S. Beaudoin,et al. Amorphous Solid Dispersions Containing Residual Crystallinity: Influence of Seed Properties and Polymer Adsorption on Dissolution Performance. , 2020, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[21] R. Hoogenboom,et al. Drug Delivery Systems Based on Poly(2‐Oxazoline)s and Poly(2‐Oxazine)s , 2020 .
[22] Wei Gao,et al. Melt electrohydrodynamic 3D printed Poly (ε-caprolactone)/Polyethylene glycol/Roxithromycin scaffold as a potential anti-infective implant in bone repair. , 2019, International journal of pharmaceutics.
[23] L. Meinel,et al. Loading‐Dependent Structural Model of Polymeric Micelles Encapsulating Curcumin by Solid‐State NMR Spectroscopy† , 2019, Angewandte Chemie.
[24] D. Hutmacher,et al. The Next Frontier in Melt Electrospinning: Taming the Jet , 2019, Advanced Functional Materials.
[25] I. Hidalgo,et al. Simultaneous Analysis of Dissolution and Permeation Profiles of Nanosized and Microsized Formulations of Indomethacin Using the In Vitro Dissolution Absorption System 2. , 2019, Journal of pharmaceutical sciences.
[26] Evangelos Liamas,et al. Hot melt extrusion of heat-sensitive and high melting point drug: Inhibit the recrystallization of the prepared amorphous drug during extrusion to improve the bioavailability. , 2019, International journal of pharmaceutics.
[27] S. Zabler,et al. The Impact of Melt Electrowritten Scaffold Design on Porosity Determined by X-Ray Microtomography , 2019, Tissue engineering. Part C, Methods.
[28] Tatsiana Liavitskaya,et al. Thermal stability of indomethacin increases with the amount of polyvinylpyrrolidone in solid dispersion , 2019, Thermochimica Acta.
[29] R. Hoogenboom,et al. Unexpected Reactivity Switch in the Statistical Copolymerization of 2-Oxazolines and 2-Oxazines Enabling the One-Step Synthesis of Amphiphilic Gradient Copolymers. , 2019, Journal of the American Chemical Society.
[30] Thomas Lorson,et al. Combining Ultra‐High Drug‐Loaded Micelles and Injectable Hydrogel Drug Depots for Prolonged Drug Release , 2019, Macromolecular Chemistry and Physics.
[31] A. Keating,et al. Engineering of Nanofibrous Amorphous and Crystalline Solid Dispersions for Oral Drug Delivery , 2018, Pharmaceutics.
[32] D. Hutmacher,et al. Melt electrowriting of electroactive poly(vinylidene difluoride) fibers , 2018, Polymer International.
[33] Thomas Lorson,et al. More Is Sometimes Less: Curcumin and Paclitaxel Formulations Using Poly(2-oxazoline) and Poly(2-oxazine)-Based Amphiphiles Bearing Linear and Branched C9 Side Chains. , 2018, Macromolecular bioscience.
[34] Yajuan Sun,et al. Drug delivery systems for programmed and on‐demand release☆ , 2018, Advanced drug delivery reviews.
[35] H. Terada,et al. Decarboxylation of indomethacin induced by heat treatment , 2018, International journal of pharmaceutics.
[36] A. L. Demirel,et al. Poly(2-Ethyl-2-Oxazoline) as an Alternative to Poly(Vinylpyrrolidone) in Solid Dispersions for Solubility and Dissolution Rate Enhancement of Drugs. , 2018, Journal of pharmaceutical sciences.
[37] Onur Bas,et al. Melt Electrospinning Writing of Three-dimensional Poly(ε-caprolactone) Scaffolds with Controllable Morphologies for Tissue Engineering Applications. , 2017, Journal of visualized experiments : JoVE.
[38] R. Luxenhofer,et al. Drug Specificity, Synergy and Antagonism in Ultrahigh Capacity Poly(2-oxazoline)/Poly(2-oxazine) based Formulations. , 2017, Journal of the American Chemical Society.
[39] Christel A. S. Bergström,et al. The Need for Restructuring the Disordered Science of Amorphous Drug Formulations , 2017, Pharmaceutical Research.
[40] S. Pispas,et al. Amphiphilic poly(2-oxazoline) copolymers as self-assembled carriers for drug delivery applications , 2017 .
[41] Sheng Qi,et al. Recent developments in micro- and nanofabrication techniques for the preparation of amorphous pharmaceutical dosage forms. , 2016, Advanced drug delivery reviews.
[42] Yingchao Han,et al. Poly(2-oxazoline) block copolymer based formulations of taxanes: effect of copolymer and drug structure, concentration, and environmental factors†‡ , 2015 .
[43] Banibrata Maity,et al. Interaction of the nonsteroidal anti-inflammatory drug indomethacin with micelles and its release. , 2015, The journal of physical chemistry. B.
[44] Gareth R. Williams,et al. Amorphous formulations of indomethacin and griseofulvin prepared by electrospinning. , 2014, Molecular pharmaceutics.
[45] M. Descamps,et al. A new protocol to determine the solubility of drugs into polymer matrixes. , 2013, Molecular pharmaceutics.
[46] Johannes E. Schindelin,et al. Fiji: an open-source platform for biological-image analysis , 2012, Nature Methods.
[47] R. Luxenhofer,et al. Structure-property relationship in cytotoxicity and cell uptake of poly(2-oxazoline) amphiphiles. , 2011, Journal of controlled release : official journal of the Controlled Release Society.
[48] Eva Maria Hoffmann,et al. Advances in orodispersible films for drug delivery , 2011, Expert opinion on drug delivery.
[49] R. Luxenhofer,et al. Doubly amphiphilic poly(2-oxazoline)s as high-capacity delivery systems for hydrophobic drugs. , 2010, Biomaterials.
[50] G. Fetih,et al. Improvement of solubility and dissolution rate of indomethacin by solid dispersions in Gelucire 50/13 and PEG4000. , 2009, Saudi pharmaceutical journal : SPJ : the official publication of the Saudi Pharmaceutical Society.
[51] A. Bansal,et al. Molecular interactions in celecoxib‐PVP‐meglumine amorphous system , 2005, The Journal of pharmacy and pharmacology.
[52] Shiro Kobayashi,et al. Isomerization Polymerization of 1,3-Oxazine. IV. Kinetic Studies on the Polymerization of 2-Methyl-5,6-dihydro-4H- 1,3-oxazine , 1974 .
[53] W. Seeliger,et al. Simple Synthesis of 2-Substituted 2-Oxazolines and 5,6-Dihydro-4H-1,3-oxazines , 1972 .